An active element array structure is provided. The active element array structure comprises a base plate and a plurality of gate lines, data lines, active devices, storage capacitors and pixel electrodes thereon. Each storage capacitor has an upper electrode and the upper electrode has at least an aperture. The direction of electric field crossing over the aperture forms an included angle with the alignment direction of an optically self-compensated birefringence liquid crystal layer. When an electric field is applied to the optically self-compensated birefringence liquid crystal layer, the liquid crystal molecules close to the aperture twist and rapidly transit from a splay state to a bend state. Thereafter, elastic force between the liquid crystal molecules spread the transition to the entire liquid crystal layer so that an optically self-compensated birefringence liquid crystal display is warmed up rapidly.
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8. An active device array structure, the active device array structure comprising:
a base plate;
a plurality of gate lines disposed over the base plate;
a plurality of data lines disposed over the base plate, wherein a pixel area is formed between any two adjacent gate lines and any two adjacent data lines;
a plurality of active devices disposed aver the base plate, wherein each active device is fanned in an intersection region between the gate line and the data line and electrically connected to corresponding gate line and data line;
a plurality of storage capacitors disposed over the base plate, wherein each storage capacitor has an upper electrode having at least a first aperture, and the first aperture is surrounded by the upper electrode; and
a plurality of pixel electrodes disposed over the pixel area, wherein each the pixel electrodes is respectively electrically connected to the corresponding active device and the corresponding upper electrode.
1. An active device array structure for rapidly twisting the alignment of liquid crystal molecules from a splay state to a bend state, the active device array structure comprising:
a base plate;
a plurality of gate lines disposed over the base plate;
a plurality of data lines disposed over the base plate, wherein a pixel area is formed between any two adjacent gate lines and any two adjacent data lines;
a plurality of active devices disposed over the base plate, wherein each active device is formed in an intersection region between the gate line and the data line and electrically connected to corresponding gate line and data line;
a plurality of storage capacitors disposed over the base plate, wherein each storage capacitor has an upper electrode having at least a first aperture; and
a plurality of pixel electrodes disposed over the pixel area, wherein each of the pixel electrodes is respectively electrically connected to the corresponding active device and the corresponding upper electrode, and the upper electrode of each storage capacitor is located underneath an edge of the corresponding pixel electrode
wherein each of pixel electrodes further comprises at least a second aperture the first aperture is located underneath the pixel electrode, and the second aperture is formed directly above the first aperture.
2. The active device array structure of
3. The active device array structure of
4. The active device array structure of
5. The active device array structure of
6. The active device array structure of
7. The active device array structure of
9. The active device array structure of
10. The active device array structure of
11. The active device array structure of
12. The active device array structure of
13. The active device array structure of
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This application claims the priority benefit of Taiwan application serial no. 92119649, filed on Jul. 18, 2003.
1. Field of the Invention
The present invention relates to an active element array structure. More particularly, the present invention relates to an active element array structure for an optically self-compensated birefringence liquid crystal display capable of twisting of liquid crystal molecules from a splay state to a bend state rapidly.
2. Description of the Related Art
Rapid progress in semiconductor devices and man-machine interface products has lead to a proliferation of multi-media systems in our society. In the past, cathode ray tube (CRT) has dominated the market because of its price and superb quality. Although the conventional CRT has many advantages, the design of the electron gun renders it heavy and is a potential source of radiation. With big leaps in the techniques in manufacturing semiconductor devices and optical devices, thin film transistor (TFT) liquid crystal displays (LCD) have gradually become main-stream display products. This is because a TFT LCD has an exceptional picture quality, a high spatial utilization and a low power consumption and provides a radiation-free environment.
In general, liquid crystal displays can be classified according to the liquid crystal type, the driving method and the positioning of the light source. The OCB (optically self-compensated birefringence) LCD is one type of LCD having a rapid response speed suitable for displaying a succession of rapidly changing pictures in an animation show or broadcasting movies through a computer. The OCB also stands for Optically Compensated Bend, and Optically Compensated Birefringence respectively. However, before the optically self-compensated birefringence liquid crystal display can be used for the rapid display of pictures, the liquid crystal molecules within the display must first be transited from a splay state to a bend state.
Among the conventional techniques for speeding up the transition, one method uses a special driving method to kick-start the transition. Another method uses a special pixel design to alter the alignment of a portion of the liquid crystal molecules so that the transition from a splay state to a bend state is faster.
Accordingly, one object of the present invention is to provide an optically self-compensated birefringence liquid crystal display having a shorter splay state to bend state transition period.
To achieve these and other advantages and in accordance with the purpose of the invention, as embodied and broadly described herein, the invention provides an active device array structure for twisting the alignment of liquid crystal molecules from a splay state to a bend state rapidly. The active device array structure comprises a base plate and a plurality of gate lines, data lines, active elements, storage capacitors and pixel electrodes thereon. A pixel area is formed between any two adjacent gate lines and any two adjacent data lines. Each of the active devices is formed in an intersection region between the gate line and the data line and is electrically connected to the corresponding gate line and data line respectively. Each storage capacitor has an upper electrode with at least a first aperture. Furthermore, the direction of electric field adjacent to the first aperture being at a predetermined angle to an alignment direction of the liquid crystal molecules, the liquid crystal layer possessing a transition from a splay state to a bend state while operating. The pixel electrodes are disposed over the pixel areas and are electrically connected to the corresponding active devices and the corresponding upper electrodes. When the first aperture is located beneath the pixel electrode, each pixel electrode further includes at least a second aperture above the first aperture.
Through the aperture design, the alignment of the optically self-compensated birefringence liquid crystal molecules in the neighborhood of the aperture will be twisted when a voltage is applied during operation. This leads to a rapid transition of the liquid crystal molecules from a splay state to a bend state. After the rapid local re-alignment of the optically self-compensated birefringence liquid crystal molecules, elastic forces between liquid crystal molecules will spread and accelerate pixel transition. Ultimately, there is a reduction in the warm-up period for the optically self-compensated birefringence liquid crystal display.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
In this embodiment, the storage capacitor 240 is built over the gate line 220 (Cst on gate). The capacitor 240 has an upper electrode 242. The upper electrode 242 connects electrically with the pixel electrode 250 and couples electrically with a portion of the gate line 220 underneath. The upper electrode 242 is disposed over a portion of the gate line 220 and has at least a first aperture 244. Furthermore, the direction of the electric field adjacent to the first aperture 244 being at a predetermined angle to an alignment direction of the OCB liquid crystal molecules, the OCB liquid crystal layer possessing a transition from a splay state to a bend state while operating.
Furthermore, there is no restriction on the shape of the aperture on the upper electrode.
In addition, the aperture on the upper electrode could also be located only underneath the pixel electrode.
It is to be noted that the upper electrode is not limited to a position over a portion of the gate line according to the embodiment of this invention. Anyone familiar with such technologies will notice that the active device array structure may further include a plurality of common lines formed between the gate lines. The upper electrode is disposed over a portion of the common line area so that the upper electrode and the common line together constitute a storage capacitor (Cst on common).
However, in the presence of the first aperture 244, there is considerable variation of the electric field nearby so that the optically self-compensated birefringence liquid crystal molecules 205 will also sense an electric field perpendicular to the y-axis. Together with a suitably selected liquid crystal alignment direction set at a particular included angle from a direction perpendicular to the y-axis, the optically self-compensated birefringence liquid crystal molecules 205 will twist using the y-axis as a center of rotation. Because the elastic force involved in the transition of the liquid crystal molecules 205 from the splay state to the twisted state and finally to the bend state is continuous, the transition is rapid in this local region. Thereafter, this local transition may serve as a center for rapidly spreading the transition throughout the pixel through the elastic force of the liquid crystal molecules. Similarly, the aperture in the pixel electrode according to the second embodiment of this invention will also produce the same effect in the liquid crystal molecules.
In summary, the active device array structure according to this invention has at least the following advantages:
1. Due the presence of an aperture in the pixel electrode or the upper electrode, the optically self-compensated birefringence liquid crystal molecules within the entire pixel region are rapidly transited from a splay state to a bend state. Hence, the warm-up period required to activate an optically self-compensated birefringence liquid crystal display is reduced considerably.
2. The optically self-compensated birefringence liquid crystal display can be fabricated using compatible conventional processes. Therefore, no additional cost is incurred when the fabrication process according to this invention is adopted.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
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